控制理论(社会学)
执行机构
非线性系统
量化(信号处理)
整体滑动模态
滑模控制
计算机科学
可达性
控制器(灌溉)
自适应控制
控制系统
变结构控制
传输(电信)
理论(学习稳定性)
控制工程
非线性控制
断层(地质)
容错
自适应系统
模式(计算机接口)
国家观察员
Lyapunov稳定性
系统动力学
传动系统
计算机模拟
观察员(物理)
指数稳定性
离散时间和连续时间
作者
Haihang Hu,Bo Meng,马宏基,Zi Wang
摘要
ABSTRACT In this paper, we study the adaptive sliding mode control (SMC) problem for a class of uncertain nonlinear systems with actuator faults, using a prescribed‐time (PT) control framework. For addressing the actuator fault issue, we employ fault‐tolerant control (FTC); in the face of networked control systems (NCSs), we adopt event‐triggered and quantization methods to improve transmission efficiency. First, we design integral sliding mode surfaces and switching terms to effectively suppress the impact of quantization errors and nonlinearities on system performance. Next, we introduce a dynamic event‐triggered mechanism and a dynamic quantizer to develop a discrete control framework that does not assume input state stability constraints. The nonperiodic discrete control method can significantly improve the data transmission efficiency of NCS. Furthermore, based on adaptive parameter estimation, a new adaptive prescribed‐time sliding mode (APTSM) controller is proposed, which ensures global PT stability for nonlinear systems with actuator faults, and guarantees the reachability of the sliding mode surface under PT conditions, preventing the occurrence of Zeno phenomena during event‐triggered sampling. Finally, the practicality of the designed control method is validated through numerical simulations and manipulation systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI